Cavity-QED models of switches for attojoule-scale nanophotonic logic
- 22 October 2009
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review A
- Vol. 80 (4), 045802
- https://doi.org/10.1103/physreva.80.045802
Abstract
Quantum optical input-output models are described for a class of optical switches based on cavity quantum electrodynamics (QED) with a single multilevel atom (or comparable bound system of charges) coupled simultaneously to several resonant field modes. A recent limit theorem for quantum stochastic differential equations is used to show that such models converge to a simple scattering matrix in a type of strong-coupling limit that seems natural for nanophotonic systems. Numerical integration is used to show that the behavior of the prelimit model approximates that of the simple scattering matrix in a realistic regime for the physical parameters and that it is possible in the proposed cavity-QED configuration for low-power optical signals to switch higher-power signals at attojoule energy scales.Keywords
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This publication has 21 references indexed in Scilit:
- Quantum Jumps and Spin Dynamics of Interacting Atoms in a Strongly Coupled Atom-Cavity SystemPhysical Review Letters, 2009
- Coherent generation of non-classical light on a chip via photon-induced tunnelling and blockadeNature Physics, 2008
- Coherent-feedback quantum control with a dynamic compensatorPhysical Review A, 2008
- $H^{\infty}$ Control of Linear Quantum Stochastic SystemsIEEE Transactions on Automatic Control, 2008
- Generation and transfer of single photons on a photonic crystal chipOptics Express, 2007
- Single-photon all-optical switching using waveguide-cavity quantum electrodynamicsPhysical Review A, 2006
- Dipole Induced Transparency in Drop-Filter Cavity-Waveguide SystemsPhysical Review Letters, 2006
- Cavity Quantum Electrodynamics: Coherence in ContextScience, 2002
- A computational toolbox for quantum and atomic opticsJournal of Optics B: Quantum and Semiclassical Optics, 1999
- Real-time detection of individual atoms falling through a high-finesse optical cavityOptics Letters, 1996